PowerAndFreqStability.cs 25 KB

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  1. using System;
  2. using System.Collections.Generic;
  3. using System.Linq;
  4. using System.Text;
  5. using System.Threading;
  6. using System.Threading.Tasks;
  7. using Tps_LQ_Transmitter.com;
  8. namespace Tps_LQ_Transmitter.models
  9. {
  10. /// <summary>
  11. /// 功率及频率稳定度测试
  12. /// </summary>
  13. class PowerAndFreqStability : BaseModel
  14. {
  15. double[,] WTempPowerVal;
  16. double[,] dBTempPowerVal;
  17. string serial = "****";
  18. public PowerAndFreqStability()
  19. {
  20. TemplateName = "功率及频率稳定度测试";
  21. }
  22. /// <summary>
  23. /// 功率及频率稳定度测试
  24. /// </summary>
  25. public override bool Run(TestNode parameters, List<TestNode> nodes)
  26. {
  27. double y_value, x_value, TestFreq;
  28. ShowMessage(MsgType.Info, string.Format("第{0}个频点功率及频率稳定度测试开始", parameters.PointIndex));
  29. Random random = new Random();
  30. //获取仪器
  31. var SA = this.tps.GetDevice("频谱仪");
  32. TransmitterSerialPort SerialClient = new TransmitterSerialPort();
  33. PowerAndFreqStabilityOutData Data = new PowerAndFreqStabilityOutData();
  34. DataType PowerPrint = new DataType();//功率(dBm)
  35. DataType FreqPrint = new DataType();//实测频率
  36. DataType FreqAccuracyPrint = new DataType();//频率稳定度
  37. DataType PowerSumPrint = new DataType();//两路功率总和(w)
  38. DataType PowerFlatnessPrint = new DataType();//两路功率不平度(dB)
  39. if (SA == null)
  40. {
  41. ShowMessage(MsgType.Error, string.Format("仪器不齐全,{0}/{1}无法运行", parameters.Channel, parameters.Name));
  42. return false;
  43. }
  44. // y_value = double.Parse(SA.Query("读通道功率"));
  45. OpenExcel("功率及频率稳定度", out Spire.Xls.Workbook workbook, out Spire.Xls.Worksheet sheet);
  46. if (sheet == null)
  47. {
  48. ShowMessage(MsgType.Error, "找不到" + tps.TestProject + "模板.xlsx");
  49. return false;
  50. }
  51. ConfigParameter PowerPara = new ConfigParameter();
  52. //MatchComPara CfigComParas = new MatchComPara();
  53. //CfigComParas = LoadComWorkBook();
  54. //if (CfigComParas == null)
  55. //{
  56. // return false;
  57. //}
  58. //byte FourthByte = 0x00;
  59. //string ComPort = CfigComParas.GetComPort("1");
  60. //byte ThridByte = Convert.ToByte(CfigComParas.GetThirdByte("1"), 16);
  61. PowerPara.StepFrequency = 0;
  62. PowerPara.OutLoss = parameters.Parameters.GetParameter<double>("输出损耗");
  63. // PowerPara.StartFrequency = parameters.Parameters.GetParameter<double>("起始频率");
  64. // PowerPara.StepFrequency = parameters.Parameters.GetParameter<double>("频率步进");
  65. // parameters.PointTotal = parameters.Parameters.GetParameter<int>("频点数量");
  66. // PowerPara.StopFrequency = parameters.Parameters.GetParameter<double>("终止频率");
  67. PowerPara.SPAN = parameters.Parameters.GetParameter<string>("扫描带宽(SPAN)");
  68. PowerPara.CHSPAN = parameters.Parameters.GetParameter<string>("通道扫描带宽(SPAN)");
  69. PowerPara.ACHBand = parameters.Parameters.GetParameter<string>("通道带宽");
  70. PowerPara.REF = parameters.Parameters.GetParameter<string>("参考电平(REF)");
  71. PowerPara.RBW = parameters.Parameters.GetParameter<string>("分辨率带宽(RBW)");
  72. PowerPara.VBW = parameters.Parameters.GetParameter<string>("视频带宽(VBW)");
  73. //PowerPara.ControlDelay = parameters.Parameters.GetParameter<int>("控制延时");
  74. PowerPara.PowerLower = parameters.Parameters.GetParameter<double>("功率下限");
  75. PowerPara.PowerUpper = parameters.Parameters.GetParameter<double>("功率上限");
  76. PowerPara.FreqAccuracyUpper = parameters.Parameters.GetParameter<double>("频率稳定度上限");
  77. PowerPara.PowerSumLower = parameters.Parameters.GetParameter<double>("两路功率总和下限");
  78. PowerPara.PowerSumUpper = parameters.Parameters.GetParameter<double>("两路功率总和上限");
  79. PowerPara.PowerFlatnessUpper = parameters.Parameters.GetParameter<double>("功率不平度上限");
  80. if ( (PowerPara.SPAN == null) || (PowerPara.REF == null) || (PowerPara.RBW == null) || (PowerPara.VBW == null) || (PowerPara.PowerLower == 0)
  81. || (PowerPara.PowerUpper == 0) || (PowerPara.FreqAccuracyUpper == 0) || (PowerPara.PowerSumLower == 0) || (PowerPara.PowerSumUpper == 0) || (PowerPara.PowerFlatnessUpper == 0))
  82. {
  83. ShowMessage(MsgType.Error, string.Format("配置文件中频率参数为空,{0}/{1}无法运行", parameters.Channel, parameters.Name));
  84. return false;
  85. }
  86. //if (PowerPara.ControlDelay == 0)
  87. //{
  88. // PowerPara.ControlDelay = 10;
  89. //}
  90. //SerialClient.SerialOpen(ComPort);
  91. if (true)//需具备仪器
  92. {
  93. SA.Write("仪器复位"); SA.Query("OPC");
  94. }
  95. //if ((parameters.PointTotal != 0) && (parameters.PointTotal != 1) && (PowerPara.StepFrequency == 0))
  96. //{
  97. // PowerPara.StepFrequency = ((int)(((PowerPara.StopFrequency - PowerPara.StartFrequency) / (parameters.PointTotal - 1)) * 100)) / 100;
  98. //}
  99. //if (PowerPara.StepFrequency != 0)
  100. //{
  101. // parameters.PointTotal = ((int)((PowerPara.StopFrequency - PowerPara.StartFrequency) / PowerPara.StepFrequency)) + 1;
  102. //}
  103. //parameters.PointTotal = CfigComParas.ComParameters.Count;
  104. double CenterFreq;
  105. Data.Power = new double[parameters.PointTotal];
  106. Data.Freq = new double[parameters.PointTotal];
  107. Data.FreqAccuracy = new double[parameters.PointTotal];
  108. if (tps.Serial != serial)
  109. {
  110. WTempPowerVal = new double[2, parameters.PointTotal] ;
  111. dBTempPowerVal = new double[2, parameters.PointTotal];
  112. serial = tps.Serial;
  113. for (int initVal1 = 0; initVal1 < 2; initVal1++)
  114. {
  115. for (int initVal2 = 0; initVal2 < parameters.PointTotal; initVal2++)
  116. {
  117. WTempPowerVal[initVal1, initVal2] = -100;
  118. dBTempPowerVal[initVal1, initVal2] = -100;
  119. }
  120. }
  121. }
  122. //for (int parameters.PointIndex = 0; parameters.PointIndex < parameters.PointTotal; parameters.PointIndex++)
  123. {
  124. //string sa= CfigComParas.GetFourthByte((parameters.PointIndex + 1).ToString());
  125. //FourthByte = Convert.ToByte(CfigComParas.GetFourthByte((parameters.PointIndex + 1).ToString()), 16);
  126. //CenterFreq = double.Parse(CfigComParas.Getfreqpoint((parameters.PointIndex + 1).ToString()));
  127. //CenterFreq = PowerPara.StartFrequency + PowerPara.StepFrequency * FourthByte;
  128. if (true)//需具备仪器
  129. {
  130. //控制
  131. //SerialClient.DUT_Transmitter_Ctrol(ThridByte, FourthByte);
  132. //Thread.Sleep(PowerPara.ControlDelay);//单位ms
  133. SA.Write("设置频谱测试模式"); SA.Query("OPC");
  134. SA.Write("SPAN", PowerPara.SPAN); SA.Query("OPC");
  135. SA.Write("RBW", PowerPara.RBW); SA.Query("OPC");
  136. SA.Write("VBW", PowerPara.VBW); SA.Query("OPC");
  137. SA.Write("REF", PowerPara.REF); SA.Query("OPC");
  138. SA.Write("CENTER", parameters.CenterFreq.ToString()); SA.Query("OPC");
  139. SA.Write("SingleOrCont", "1"); SA.Query("OPC");
  140. Thread.Sleep(500);
  141. SA.Write("MARK打开", "1"); SA.Query("OPC");
  142. Thread.Sleep(500);
  143. if (SA.Query("IDN").Contains("N9030"))
  144. {
  145. SA.Write("打开MARK精度", "1"); SA.Query("OPC");
  146. Thread.Sleep(200);
  147. }
  148. SA.Write("PEAK", "1"); SA.Query("OPC");
  149. Thread.Sleep(500);
  150. // SA.Write("SingleOrCont", "0"); SA.Query("OPC");
  151. // SA.Write("单次扫描"); SA.Query("OPC");
  152. // Thread.Sleep(100);
  153. // string i=SA.Query("读MARK高精度频率", "1");
  154. string val = "";
  155. if (SA.Query("IDN").Contains("N9030"))
  156. {
  157. val = SA.Query("读MARK高精度频率", "1");
  158. }
  159. else
  160. {
  161. val = SA.Query("读MARK频率", "1");
  162. }
  163. TestFreq = double.Parse(val);
  164. if (SA.Query("IDN").Contains("N9030"))
  165. {
  166. SA.Write("MARK关闭", "1"); SA.Query("OPC");
  167. }
  168. SA.Write("设置通道功率模式"); SA.Query("OPC");
  169. SA.Write("SingleOrCont", "0"); SA.Query("OPC");
  170. if (SA.Query("IDN").Contains("N9030"))
  171. {
  172. SA.Write("设置通道REF", PowerPara.REF); SA.Query("OPC");
  173. }
  174. else
  175. {
  176. SA.Write("SPAN", PowerPara.CHSPAN); SA.Query("OPC");
  177. SA.Write("REF", PowerPara.REF); SA.Query("OPC");
  178. }
  179. SA.Write("设置通道带宽", PowerPara.ACHBand); SA.Query("OPC"); ;//设置完设置通道带宽后,设置通道SPAN会变,所以通道SPAN放在通道带宽后
  180. if (SA.Query("IDN").Contains("N9030"))
  181. {
  182. SA.Write("设置通道SPAN", PowerPara.CHSPAN); SA.Query("OPC");
  183. }
  184. SA.Write("单次扫描"); SA.Query("OPC");
  185. if (SA.Query("IDN").Contains("N9030"))
  186. {
  187. // PsaPeakValue_CHTracedata(SA, out y_value, out x_value, true);
  188. y_value = double.Parse(SA.Query("读通道功率"));
  189. }
  190. else
  191. {
  192. // PsaPeakValue_Tracedata(SA, out y_value, out x_value, true);
  193. y_value = double.Parse(SA.Query("读通道功率"));
  194. }
  195. Data.Power[parameters.PointIndex] = y_value + PowerPara.OutLoss;//功率
  196. }
  197. //Data.Power[parameters.PointIndex] = random.Next(3000, 4000) / 100.0;//随机数
  198. PowerPrint.Test_name = parameters.Channel + "-功率测试(W)-" + parameters.CenterFreq.ToString() + "MHz";
  199. PowerPrint.Lower = PowerPara.PowerLower;
  200. PowerPrint.Upper = PowerPara.PowerUpper;
  201. PowerPrint.TestVal = Math.Round(Math.Pow(10, (Data.Power[parameters.PointIndex] / 10)) / 1000, 2);//功率W
  202. if ((PowerPrint.TestVal >= PowerPrint.Lower) && (PowerPrint.TestVal <= PowerPrint.Upper))
  203. {
  204. PowerPrint.Result = "是";
  205. }
  206. else
  207. {
  208. PowerPrint.Result = "否";
  209. }
  210. FreqPrint.Test_name = parameters.Channel + "-频率测试(MHz)-" + parameters.CenterFreq.ToString() + "MHz";
  211. FreqPrint.Lower =Math.Round( parameters.CenterFreq - ((PowerPara.FreqAccuracyUpper * parameters.CenterFreq)),2);
  212. FreqPrint.Upper = Math.Round((PowerPara.FreqAccuracyUpper * parameters.CenterFreq) + parameters.CenterFreq, 2);
  213. FreqPrint.TestVal = Math.Round(TestFreq / 1000000, 3);//实测频率
  214. //FreqPrint.TestVal = random.Next(-600, 6000) / 100.0 + CenterFreq;//随机数
  215. if ((FreqPrint.TestVal >= FreqPrint.Lower) && (FreqPrint.TestVal <= FreqPrint.Upper))
  216. {
  217. FreqPrint.Result = "是";
  218. }
  219. else
  220. {
  221. FreqPrint.Result = "否";
  222. }
  223. FreqAccuracyPrint.Test_name = parameters.Channel + "-频率稳定度测试-" + parameters.CenterFreq.ToString() + "MHz";
  224. FreqAccuracyPrint.Upper = PowerPara.FreqAccuracyUpper;
  225. FreqAccuracyPrint.TestVal = Math.Round(Math.Abs(TestFreq - parameters.CenterFreq * 1000000) / (parameters.CenterFreq * 1000000), 6);//频率稳定度
  226. //FreqAccuracyPrint.TestVal = Math.Round(Math.Abs((random.Next(-600, 6000) / 100.0 + CenterFreq)*1000000 - CenterFreq * 1000000) / (CenterFreq * 1000000), 6);//随机数
  227. if (FreqAccuracyPrint.TestVal <= FreqAccuracyPrint.Upper)
  228. {
  229. FreqAccuracyPrint.Result = "是";
  230. }
  231. else
  232. {
  233. FreqAccuracyPrint.Result = "否";
  234. }
  235. tps.TestTableAddCell(tps.Serial,PowerPrint.Test_name,tps.SystemChofSerial, PowerPrint.Lower.ToString(), PowerPrint.Upper.ToString(), PowerPrint.TestVal.ToString(), PowerPrint.Result);
  236. tps.TestTableAddCell(tps.Serial,FreqPrint.Test_name, tps.SystemChofSerial,FreqPrint.Lower.ToString(), FreqPrint.Upper.ToString(), FreqPrint.TestVal.ToString(), FreqPrint.Result);
  237. if (parameters.Channel == "通道1")
  238. {
  239. WriteExcelData(sheet, parameters.PointIndex, 1, PowerPrint.Test_name, PowerPrint.Lower.ToString(), PowerPrint.Upper.ToString(), PowerPrint.TestVal.ToString(), PowerPrint.Result);
  240. WriteExcelData(sheet, parameters.PointIndex, 3, FreqPrint.Test_name, FreqPrint.Lower.ToString(), FreqPrint.Upper.ToString(), FreqPrint.TestVal.ToString(), FreqPrint.Result);
  241. //tps.SetTestTableCellValue(parameters.PointIndex, 10, PowerPrint.Result, PowerPrint.TestVal);
  242. //tps.SetTestTableCellValue(parameters.PointIndex, 7, FreqPrint.Result, FreqPrint.TestVal);
  243. }
  244. else if (parameters.Channel == "通道2")
  245. {
  246. WriteExcelData(sheet, parameters.PointIndex, 2, PowerPrint.Test_name, PowerPrint.Lower.ToString(), PowerPrint.Upper.ToString(), PowerPrint.TestVal.ToString(), PowerPrint.Result);
  247. WriteExcelData(sheet, parameters.PointIndex, 4, FreqPrint.Test_name, FreqPrint.Lower.ToString(), FreqPrint.Upper.ToString(), FreqPrint.TestVal.ToString(), FreqPrint.Result);
  248. //tps.SetTestTableCellValue(parameters.PointIndex, 11, PowerPrint.Result, PowerPrint.TestVal);
  249. //tps.SetTestTableCellValue(parameters.PointIndex + 15, 7, FreqPrint.Result, FreqPrint.TestVal);
  250. }
  251. #region 功率不平度及两路功率总和计算
  252. if (parameters.Channel == "通道1")
  253. {
  254. WTempPowerVal[0, parameters.PointIndex] = PowerPrint.TestVal;//W
  255. dBTempPowerVal[0, parameters.PointIndex] = Data.Power[parameters.PointIndex];//dB
  256. }
  257. else
  258. {
  259. WTempPowerVal[1, parameters.PointIndex] = PowerPrint.TestVal;//W
  260. dBTempPowerVal[1, parameters.PointIndex] = Data.Power[parameters.PointIndex];//dB
  261. }
  262. if (WTempPowerVal[0, parameters.PointIndex] > -100 && WTempPowerVal[1, parameters.PointIndex] > -100)
  263. {
  264. PowerSumPrint.Test_name = "两路功率总和(W)-" + parameters.CenterFreq.ToString() + "MHz";
  265. PowerSumPrint.Lower = PowerPara.PowerSumLower;
  266. PowerSumPrint.Upper = PowerPara.PowerSumUpper;
  267. PowerSumPrint.TestVal = Math.Round(WTempPowerVal[0, parameters.PointIndex] + WTempPowerVal[1, parameters.PointIndex],2);//W
  268. if ((PowerSumPrint.TestVal >= PowerSumPrint.Lower) && (PowerSumPrint.TestVal <= PowerSumPrint.Upper))
  269. {
  270. PowerSumPrint.Result = "是";
  271. }
  272. else
  273. {
  274. PowerSumPrint.Result = "否";
  275. }
  276. PowerFlatnessPrint.Test_name = "功率不平度(dB)-" + parameters.CenterFreq.ToString() + "MHz";
  277. PowerFlatnessPrint.Upper = PowerPara.PowerFlatnessUpper;
  278. PowerFlatnessPrint.TestVal = Math.Round(Math.Abs(dBTempPowerVal[0, parameters.PointIndex] - dBTempPowerVal[1, parameters.PointIndex]),2);//dB
  279. if ((PowerFlatnessPrint.TestVal >= 0) && (PowerFlatnessPrint.TestVal <= PowerFlatnessPrint.Upper))
  280. {
  281. PowerFlatnessPrint.Result = "是";
  282. }
  283. else
  284. {
  285. PowerFlatnessPrint.Result = "否";
  286. }
  287. tps.TestTableAddCell(tps.Serial,PowerSumPrint.Test_name,tps.SystemChofSerial, PowerSumPrint.Lower.ToString(), PowerSumPrint.Upper.ToString(), PowerSumPrint.TestVal.ToString(), PowerSumPrint.Result);
  288. tps.TestTableAddCell(tps.Serial,PowerFlatnessPrint.Test_name,tps.SystemChofSerial, "0", PowerFlatnessPrint.Upper.ToString(), PowerFlatnessPrint.TestVal.ToString(), PowerFlatnessPrint.Result);
  289. // WriteExcelData(sheet, parameters.PointIndex, 3, PowerSumPrint.Test_name, PowerSumPrint.Lower.ToString(), "/", PowerSumPrint.TestVal.ToString(), PowerSumPrint.Result);
  290. // WriteExcelData(sheet, parameters.PointIndex, 4, PowerFlatnessPrint.Test_name, PowerFlatnessPrint.Lower.ToString(), "/", PowerFlatnessPrint.TestVal.ToString(), PowerFlatnessPrint.Result);
  291. //tps.SetTestTableCellValue(parameters.PointIndex, 12, PowerSumPrint.Result, PowerSumPrint.TestVal);
  292. //tps.SetTestTableCellValue(parameters.PointIndex, 13, PowerFlatnessPrint.Result,PowerFlatnessPrint.TestVal);
  293. }
  294. #endregion
  295. }
  296. //SerialClient.DUT_Transmitter_Ctrol( 00, 00);//控制掉电
  297. //SerialClient.SerialClose();
  298. SaveExcel(workbook);
  299. ShowMessage(MsgType.Info, string.Format("第{0}个频点功率及频率稳定度测试结束", parameters.PointIndex));
  300. return true;
  301. }
  302. public void PsaPeakValue_CHTracedata(AppLibs.Devices.IVISA psa, out double Y_Maxvalue, out double X_Maxvalue, bool IsReturnX = false)
  303. {
  304. System.Threading.Thread.Sleep(20);
  305. X_Maxvalue = 0;
  306. Y_Maxvalue = 0;
  307. psa.Write("单次扫描");
  308. psa.Query("OPC");
  309. //string tracedata = psa.Query("读曲线");
  310. string tracedata = psa.Query("读通道曲线");
  311. string[] tracedatas = tracedata.Split(',');
  312. double[] tracedata_double = new double[tracedatas.Length-1];
  313. for (int i = 0; i < tracedatas.Length-1; i++)
  314. {
  315. tracedata_double[i] = double.Parse(tracedatas[i]);
  316. }
  317. Y_Maxvalue = tracedata_double.Max();
  318. if (IsReturnX)
  319. {
  320. int x = Array.IndexOf(tracedata_double, Y_Maxvalue);
  321. double startfreq = double.Parse(psa.Query("读起始频率"));
  322. double stopfreq = double.Parse(psa.Query("读截止频率"));
  323. double counts = double.Parse(psa.Query("测试点数读取"));
  324. X_Maxvalue = startfreq + (stopfreq - startfreq) * x / (counts - 2);
  325. }
  326. Y_Maxvalue = Math.Round(Y_Maxvalue, 3);
  327. }
  328. public void PsaPeakValue_Tracedata(AppLibs.Devices.IVISA psa, out double Y_Maxvalue, out double X_Maxvalue, bool IsReturnX = false)
  329. {
  330. System.Threading.Thread.Sleep(20);
  331. X_Maxvalue = 0;
  332. Y_Maxvalue = 0;
  333. psa.Write("单次扫描");
  334. psa.Query("OPC");
  335. string tracedata = psa.Query("读曲线");
  336. // string tracedata = psa.Query("读通道曲线");
  337. string[] tracedatas = tracedata.Split(',');
  338. double[] tracedata_double = new double[tracedatas.Length - 1];
  339. for (int i = 0; i < tracedatas.Length - 1; i++)
  340. {
  341. tracedata_double[i] = double.Parse(tracedatas[i]);
  342. }
  343. Y_Maxvalue = tracedata_double.Max();
  344. if (IsReturnX)
  345. {
  346. int x = Array.IndexOf(tracedata_double, Y_Maxvalue);
  347. double startfreq = double.Parse(psa.Query("读起始频率"));
  348. double stopfreq = double.Parse(psa.Query("读截止频率"));
  349. double counts = double.Parse(psa.Query("测试点数读取"));
  350. X_Maxvalue = startfreq + (stopfreq - startfreq) * x / (counts - 2);
  351. }
  352. Y_Maxvalue = Math.Round(Y_Maxvalue, 3);
  353. }
  354. public class ConfigParameter
  355. {
  356. /// <summary>
  357. /// 串口
  358. /// </summary>
  359. public string ComPort { set; get; }
  360. /// <summary>
  361. /// 输出损耗
  362. /// </summary>
  363. public double OutLoss { set; get; }
  364. /// <summary>
  365. /// 产品测试的起始频率
  366. /// </summary>
  367. public double StartFrequency { set; get; }
  368. /// <summary>
  369. /// 产品测试的频率步进
  370. /// </summary>
  371. public double StepFrequency { set; get; }
  372. /// <summary>
  373. /// 产品测试的频点数量
  374. /// </summary>
  375. public int FrequencyNumber { set; get; }
  376. /// <summary>
  377. /// 产品的工作频带上限(终止频率)
  378. /// 功能:用于判断从起始频率按一定的步进测试是否超出产品工作频段上限
  379. /// </summary>
  380. public double StopFrequency { set; get; }
  381. /// <summary>
  382. ///设置频谱仪的SPAN
  383. /// </summary>
  384. public string SPAN { set; get; }
  385. /// <summary>
  386. ///设置频谱仪的通道SPAN
  387. /// </summary>
  388. public string CHSPAN { set; get; }
  389. /// <summary>
  390. /// 通道带宽
  391. /// </summary>
  392. public string ACHBand { set; get; }
  393. /// <summary>
  394. /// 设置参考电平
  395. /// </summary>
  396. public string REF { set; get; }
  397. /// <summary>
  398. /// 设置RBW
  399. /// </summary>
  400. public string RBW { set; get; }
  401. /// <summary>
  402. /// 设置VBW
  403. /// </summary>
  404. public string VBW { set; get; }
  405. /// <summary>
  406. /// 控制延时
  407. /// </summary>
  408. public int ControlDelay { set; get; }
  409. /// <summary>
  410. /// 功率下限
  411. /// </summary>
  412. public double PowerLower { set; get; }
  413. /// <summary>
  414. /// 功率上限
  415. /// </summary>
  416. public double PowerUpper { set; get; }
  417. /// <summary>
  418. /// 频率稳定度上限
  419. /// </summary>
  420. public double FreqAccuracyUpper { set; get; }
  421. /// <summary>
  422. /// 两路功率总和下限
  423. /// </summary>
  424. public double PowerSumLower { set; get; }
  425. /// <summary>
  426. /// 两路功率总和上限
  427. /// </summary>
  428. public double PowerSumUpper { set; get; }
  429. /// <summary>
  430. /// 功率不平度上限
  431. /// </summary>
  432. public double PowerFlatnessUpper { set; get; }
  433. }
  434. public class PowerAndFreqStabilityOutData
  435. {
  436. /// <summary>
  437. /// 输出功率(W)
  438. /// </summary>
  439. public double[] Power { set; get; }
  440. /// <summary>
  441. /// 频率稳定度
  442. /// </summary>
  443. public double[] FreqAccuracy { set; get; }
  444. /// <summary>
  445. /// 实测频点
  446. /// </summary>
  447. public double[] Freq { set; get; }
  448. /// <summary>
  449. /// 两路功率总和(W)
  450. /// </summary>
  451. public double[] PowerSum { set; get; }
  452. /// <summary>
  453. /// 两路功率不平度(dB)
  454. /// </summary>
  455. public double[] PowerFlatness { set; get; }
  456. }
  457. //public class DataType
  458. //{
  459. // /// <summary>
  460. // /// 测试名称
  461. // /// </summary>
  462. // public string Test_name { set; get; }
  463. // /// <summary>
  464. // /// 指标下限
  465. // /// </summary>
  466. // public double Lower { set; get; }
  467. // /// <summary>
  468. // /// 指标上限
  469. // /// </summary>
  470. // public double Upper { set; get; }
  471. // /// <summary>
  472. // /// 测试值
  473. // /// </summary>
  474. // public double TestVal { set; get; }
  475. // /// <summary>
  476. // /// 判断结果
  477. // /// </summary>
  478. // public bool Result { set; get; }
  479. //}
  480. }
  481. }